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Thin Li Co O films with a perfect layered HT-LiCoO2 structure showed the highest discharge capacities.
The Si-Sb- ZnO 0.3 compoSi-Sb- ZnO 0.3erial Si-Sb- ZnO 0.3highest discompositepanodees amaterial threxhibitedithe, even at highestrrent dischargef 5 mA/capacities
From Additional file 1: Figure S2 and Fig. 5, the 800 °C calcined samples possess the highest discharge capacities, regardless of the incorporation of Cu nanoparticles, which is due to the best graphitization at high calcination temperature.
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The highest specific discharge capacity at 0.1 C was observed for LiNi0.5Mn1.5O4 (141.59 mAh g−1), and the second highest discharge capacity was observed for LiCr0.025Ni0.4875Mn1.4875O3.95F0.05 (139.38 mAh g−1).
However, the highest discharge capacity showed a very small value (7 μAh cm−2).
The highest discharge capacity can reach 514 mAh g−1 at rates of 2000 mA g−1.
The highest discharge capacity and coulumbic efficiency were obtained for SnO phase of nanoplates morphology.
The as-prepared LiNi0.5Mn1.5O4 with polygon structure presents the highest discharge capacity.
The composite of x = 0.25 exhibits the highest discharge capacity and the best rate capability between 2.00 and 4.95 V.
The material obtained at the temperature (The second step calcination) of 990 °C exhibits the highest discharge capacity and the highest discharge voltage fading.
As a result, this cathode material delivered a highest discharge capacity of around 308 mAh g−1 at a current density of 30 mA g−1 with retention of 88.3% (according to the highest discharge capacity) after 100 cycles, 190 mAh g−1 at a current density of 300 mA g−1 and almost no capacity fading after 100 cycles.
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